CO2-EGS 相关工作流体的新的精确热力学特性数据,以及与现有热力学模型相匹配的数据

IF 4.6 3区 工程技术 Q2 ENERGY & FUELS
Jacob Stang , Anders Austegard , Yannick Jooss , Maciej Szymanek , Anna Sowiżdżał
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引用次数: 0

摘要

文章介绍了一种新的装置,用于精确测量与 CCS 有关的二氧化碳混合物的相态,以及用于 EGS 的 CO2-H2O 工作流体,设计温度范围为 -60 至 200 °C,压力高达 100 兆帕。文章介绍了在 SINTEF 能源研究实验室为 EnerGizerS 项目进行的实验设置、方法和结果。采用分析等温线技术,研究了二氧化碳-水系统在温度 50 °C、压力 1 至 17.5 兆帕之间的相平衡。这些测量结果与现有数据进行了比较和验证,随后介绍了 GERG-2008/EOS-CG 对 CO2 和 H2O 的拟合情况。在测量条件下,CO2H2O 混合物中水的最大摩尔分数不应超过 0.35%,在 7.8 兆帕时甚至应小于 0.3481%,以保持混合物的气相。在 sCO2 临界值附近,GERG-2008/EOS-CG 的精度从 1.044 % 到 10.683 % 不等。温度测量的设置估计不确定性为 31 mK,压力测量的不确定性为 0.4 至 2.5 kPa,摩尔分数的综合相对不确定性为 0.2 至 2.1%。尽管 EGS 储层可以达到 150 °C 和 50 MPa 以上的条件,但还是采用了较低的数值来验证 50 °C 下的设置。更高的压力和温度值方面的知识缺口仍亟待填补。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New and accurate thermodynamic property data of CO2-EGS relevant working fluids with data fitted to existing thermodynamic models

The article presents a new setup for the accurate measurements of the phase behaviour of CO2 mixtures relevant to CCS as well as a CO2-H2O working fluid for EGS, designed to cover the temperature range from -60 to 200 °C and up to 100 MPa in pressure. Included in the article are a description of the experimental setup, methodology, and results of the experimental campaign conducted in the SINTEF Energy Research labs for the EnerGizerS project. Phase equilibrium of the CO2-water system has been investigated at the temperature of 50 °C and pressures between 1 and 17.5 MPa, using the analytical isothermal technique. These measurements are compared and verified against the existing data, followed by a presentation of the fit of GERG-2008/EOS-CG for CO2 and H2O. The maximum mole fraction of water in the CO2H2O mixture at measured conditions should not exceed 0.35 % and even less than 0.3481 % at 7.8 MPa to maintain the vapour phase of the mixture. The accuracy with respect to GERG-2008/EOS-CG varies from 1.044 % to 10.683 % near the critical values of sCO2. The estimated uncertainty of the setup is 31 mK for temperature measurements, from 0.4 to 2.5 kPa for pressure measurements and from 0.2 to 2.1 % of total combined relative uncertainty as regards the mole fraction. Despite the fact that the EGS reservoir could reach conditions above 150 °C and 50 MPa, lower values were adopted to validate the setup at 50 °C. Knowledge gaps at higher pressure and temperature values are still in dire need of filling.

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来源期刊
CiteScore
9.20
自引率
10.30%
发文量
199
审稿时长
4.8 months
期刊介绍: The International Journal of Greenhouse Gas Control is a peer reviewed journal focusing on scientific and engineering developments in greenhouse gas control through capture and storage at large stationary emitters in the power sector and in other major resource, manufacturing and production industries. The Journal covers all greenhouse gas emissions within the power and industrial sectors, and comprises both technical and non-technical related literature in one volume. Original research, review and comments papers are included.
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